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Switching of the electron-phonon interaction in 1T-VSe2 assisted by hot carriers
- Majchrzak, Paulina;
- Pakdel, Sahar;
- Biswas, Deepnarayan;
- Jones, Alfred JH;
- Volckaert, Klara;
- Marković, Igor;
- Andreatta, Federico;
- Sankar, Raman;
- Jozwiak, Chris;
- Rotenberg, Eli;
- Bostwick, Aaron;
- Sanders, Charlotte E;
- Zhang, Yu;
- Karras, Gabriel;
- Chapman, Richard T;
- Wyatt, Adam;
- Springate, Emma;
- Miwa, Jill A;
- Hofmann, Philip;
- King, Phil DC;
- Lanatà, Nicola;
- Chang, Young Jun;
- Ulstrup, Søren
- et al.
Published Web Location
https://doi.org/10.1103/physrevb.103.l241108Abstract
We apply an intense infrared laser pulse in order to perturb the electronic and vibrational states in the three-dimensional charge density wave material 1T-VSe2. Ultrafast snapshots of the light-induced hot carrier dynamics and nonequilibrium quasiparticle spectral function are collected using time- and angle-resolved photoemission spectroscopy. The hot carrier temperature and time-dependent electronic self-energy are extracted from the time-dependent spectral function, revealing that incoherent electron-phonon interactions heat the lattice above the charge density wave critical temperature on a timescale of (200±40) fs. Density functional perturbation theory calculations establish that the presence of hot carriers alters the overall phonon dispersion and quenches efficient low-energy acoustic phonon scattering channels, which results in a new quasiequilibrium state that is experimentally observed.
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